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US5404185A - Liquid crystal display for projection systems - Google Patents

Liquid crystal display for projection systems
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US5404185A
US5404185AUS08/137,786US13778693AUS5404185AUS 5404185 AUS5404185 AUS 5404185AUS 13778693 AUS13778693 AUS 13778693AUS 5404185 AUS5404185 AUS 5404185A
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liquid crystal
light
display
crystal
crystal display
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US08/137,786
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James H. Vogeley
Arthur W. Vogeley
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nView Corp
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nView Corp
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Priority claimed from US07/044,332external-prioritypatent/US4763993A/en
Priority claimed from US07/194,516external-prioritypatent/US4976536A/en
Priority claimed from US07/625,037external-prioritypatent/US5187510A/en
Priority to US08/137,786priorityCriticalpatent/US5404185A/en
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Assigned to SIGNET BANKreassignmentSIGNET BANKSECURITY INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: NVIEW CORPORATION
Assigned to SIGNET BANKreassignmentSIGNET BANKSECURITY AGREEMENTAssignors: NVIEW CORPORATION
Assigned to CIT GROUP,THE/CREDIT FINANCE, INCreassignmentCIT GROUP,THE/CREDIT FINANCE, INCSECURITY INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: NVIEW CORPORATION
Assigned to NVIEW CORPORATIONreassignmentNVIEW CORPORATIONRELEASE OF SECURITY INTERESTAssignors: FIRST UNION NATIONAL BANK (FORMERLY SIGNET BANK)
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Abstract

Disclosed is a liquid crystal display unit comprising liquid twisted nematic liquid crystal material sandwiched between two polarizers. Transparent electrodes are provided on each side of the layer of liquid crystal for locally energizing liquid crystal material in the vicinity of two energized transparent electrodes. Polarized light passing through one polarizer is twisted or not twisted depending upon the energization state of the liquid crystal material and depending upon the second polarizer orientation does or does not pass therethrough. Accordingly, depending upon energization locations, images are formed which can be projected upon a screen. In preferred embodiments the liquid crystal display unit is used in conjunction with a cabinet to provide a low stress work station. A further embodiment includes a folded optical path in combination with the liquid crystal display so as to provide a compact projector. When operating in conjunction with an overhead projector, a preferred embodiment of the present invention is powered by light energy from the overhead projector and in a further preferred embodiment is controlled through the use of infrared or other non-visible electromagnetic communication.

Description

RELATED APPLICATIONS
This application is a continuation of U.S. Ser. No. 07/920,190, filed Jul. 22, 1992, which issued as U.S. Pat. No. 5,255,029, on Oct. 19, 1993, which in turn is a continuation of U.S. Ser. No. 07/625,037, filed Dec. 10, 1990, which issued as U.S. Pat. No. 5,187,510, on Feb. 16, 1993, which is a continuation-in-part of U.S. Ser. No. 07/194,516, filed May 16, 1988, which issued as U.S. Pat. No. 4,976,536, on Dec. 11, 1990, which in turn is a divisional of Ser. No. 07/044,332, now U.S. Pat. No. 4,763,993, issued Aug. 16, 1988.
BACKGROUND AND SUMMARY OF THE INVENTION
1. Field of the Invention
The present invention relates to projection systems in general, and specifically to a liquid crystal display system for use in conjunction with an overhead projector for displaying computer generated images.
2. Discussion of the Prior Art
The use of a liquid crystal display (LCD) in conjunction with a conventional overhead projector is disclosed in U.S. Pat. No. 4,154,007 issued to Wallace P. Judd. The Judd patent describes an electronic calculator modified so as to permit light to pass through the top and bottom plates of an LCD. This allows the calculator to be placed onto a conventional overhead projector thereby projecting an enlarged image of the calculator LCD on the projection surface. The LCD in Judd appears to be comprised of smectic crystals which, when not energized by an electric field, are transparent to light passing therethrough but become opaque to this light when energized. The opacity is due to the fact that energizing of the crystals places them in a disorganized state which causes light to be scattered in all directions. Because the smectic crystals only change the character of light passing through (from unscattered to scattered) much of the light and heat energy passes through the crystals. Unfortunately because the light is only altered slightly smectic displays tend to have a relatively low contrast.
Additionally to avoid excess drive circuitry and electrical interconnections, most LCD displays are multiplexed which means that each portion of the display is addressed (or energized) for only a fraction of the time. In a twelve digit calculator display, each digit would be addressed only one-twelfth of the time or it can be said that the display has a 1/12 duty cycle.
In order to improve contrast, modern calculators have changed to twisted nematic crystal displays which, if multiplexed at relatively high duty cycles, such as those associated with simple calculators, can produce high contrast readability. Such displays require the use of polarizers. Although polarizers tend to cause the display to absorb more heat and thus reduce the contrast, the high initial contrast obtainable with the high duty cycle calculator display could tolerate the heat without contrast being objectionably reduced. If the Judd-type patent were modified to utilize such a twisted nematic crystal display, the heat associated with an overhead projector would probably not cause any serious difficulty in its operation because of the high duty cycle.
However, where a higher resolution display is desired, for example a 25 line by 80 column and/or graphic display, a much lower duty cycle is available with respect to energization of each element, i.e., on the order of 1/100. Smectic crystals are unworkable because of their inherent low contrast. The very low duty cycle also makes the contrast available from twisted nematic crystal displays marginal and, when combined with the contrast reduction caused by polarizer heating, such displays are impractical.
A typical projector has a high power incandescent or halogen lamp utilizing 250 to 500 watts or more during operation. Inmany instances 90% of the radiation generated by the lamp is in the infrared or heat producing frequency range. Excess temperatures can be harmful to liquid crystal displays causing their destruction if high enough. However, even below the destructive temperature level, the effect of high temperatures is to decrease LCD contrast.
The optics of most conventional projectors also tends to exacerbate the heat problem. The projectors in general focus the light beam so that it impinges upon a lens (generally of the Fresnel type) upon which the projected material (in this case the LCD) is placed. The function of this lens is to direct the light so that it passes through the projection optics thus achieving the brightest possible projected image. While the attempt is made to focus light on the lens as uniformly as possible, the light energy may vary by as much as 50% or more from a "hot spot" in the center of the lens to the edges. Because it is necessary to have enough light so that the edges of the display are readily visible, this means that the temperature effects due to the hot spot in the center are even greater than elsewhere on the display.
Although some rather expensive overhead projectors tend to reduce the heat problem by arrangements of heat-absorbing and/or heat-reflecting glass or filters, the lower cost projectors make little attempt to reduce heat at the display surface. It is desirable that any LCD projection system be able to utilize any projecting apparatus.
A further problem in the use of LCD systems with overhead projectors is the requirement for an external power supply and a data input cord rendering such systems cumbersome to use.
SUMMARY OF THE INVENTION
It is, therefore, an object of the present invention to provide a liquid crystal display apparatus compatible for use with all overhead projectors providing high contrast readability.
It is a further object of the present invention to provide an LCD display for use with an overhead projector which has no external power cord connection.
It is a further object of the present invention to provide an LCD display for use with an overhead projector where the display requires no external power or data input connecting cord.
It is a still further object of the present invention to provide an integrated projection system for projecting computer or graphic display information.
It is an additional object of the present invention to provide an integrated low visual stress work station for displaying high resolution information.
It is a still further object of the present invention to provide a desktop projector of high resolution information where the projector is extremely compact and portable.
The above and other objects are achieved in accordance with the present invention by utilizing a light transparent insulation means and a polarizer or back polarizing filter between the light source and the twisted nematic crystal display. The analyzer or front polarizing filter is located between the twisted nematic crystal display and the projection screen. The use of transparent conductors on the LCD facilitates localized energization of the twisted nematic crystal where it is desirable to produce a change in opacity of the display.
In one embodiment, a heat reflective film is the light transparent insulation means and is utilized to further reduce the heat input to the twisted nematic crystal. In a further embodiment, the liquid crystal display is powered by solar cells located on the display for converting a portion of the overhead projector light energy to electrical energy for use in the display eliminating the need for a separate power cable. In a still further preferred embodiment, the computer or other control means communicates with the display through a wireless communication system eliminating the need for any external cables connected to the display. In a further embodiment, the display is combined with a projector resulting in a compact low cost projection system. In a further preferred embodiment the display is utilized in conjunction with a lower power projector in a computer or word processing work station to provide a low visual stress display system. In an additional embodiment, the combination of folded optics, a "cold mirror" and the LCD provide a compact and portable desktop electronic information projector.
BRIEF DESCRIPTION OF THE DRAWINGS
A more complete appreciation of the invention, and many of the attendant advantages thereof will be readily apparent by reference to the accompanying drawings, wherein:
FIG. 1 is a schematic representation of the effect of a twisted nematic crystal display;
FIG. 2 is a side exploded view of a twisted nematic crystal display in accordance with the present invention;
FIGS. 3a and 3b are side exploded views of twisted nematic crystal displays in accordance with a further embodiment of the present invention;
FIG. 4a shows the present invention being utilized with a conventional overhead projector;
FIG. 4b illustrates an integrated overhead projector combined with an LCD display in accordance with the present invention;
FIGS. 5a and 5b illustrate low stress work stations in accordance with the present invention with conventional light source and a point light source, respectively;
FIGS. 6a and 6b illustrate an elastomeric connector and its use in assembly of one embodiment of the present invention, respectively;
FIGS. 7a and 7b show a flex circuit connector and its use in the assembly of one embodiment of the present invention, respectively and;
FIG. 8 is a side view partially in section of a further embodiment of the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
FIG. 1 illustrates the operation of a liquid crystal material situated between two polarizers. Alight source 10 will emit light having no specific polarization. However, light passing through polarizer or backpolarizing filter 12 will have only a vertical orientation as it enters twisted nematicliquid crystal material 14. In the illustrated embodiment, inunenergized area 16, the local region where the liquid crystal is unenergized, the light polarization is rotated a specific angle (such as the 90° shown) which changes it to a horizontal polarization which passes through analyzer or frontpolarizing filter 18. However the energizedarea 20 of the liquid crystal display allows light to pass through without its polarity being twisted and the vertically polarized light would be blocked by the horizontally polarized analyzingfilter 18. Thus in FIG. 1 as shown energized areas of the liquid crystal would be dark and unenergized areas would be light. Thus one would have dark graphics on a light background. If either polarizers were rotated approximately 90° the effect would be reversed, allowing light to be transmitted where the liquid crystal is energized and for light to be blocked where the liquid crystal is not energized, providing a light graphics on dark background.
FIG. 2 illustrates the basic embodiment of applicant's invention. The twisted nematicliquid crystal material 14 is bounded by sealingmaterial 22 and contained between twotransparent plates 24. A multiplicity oftransparent electrodes 26 extending across the figure are orthogonal to a multiplicity oftransparent electrodes 28 which extend generally in a direction perpendicular to the plane of the drawing. When pairs of these electrodes are simultaneously addressed, they serve to energize the twisted nematicliquid crystal material 14 in the immediate vicinity of the junction of the energized electrodes. The criss-crossing multiplicity of electrodes comprises a means for locally energizing the crystal material in response to thecontrol unit 30 through a multiplicity ofcontrol wires 32 and 34. Power to operatecontrol unit 30 can be supplied externally or, in an embodiment shown in FIG. 2, through solar cell 36 which converts a portion of the illumination from the projector itself into electricity.
Information to thecontrol unit 30 on which electrodes are to be energized or de-energized can be provided through an external connecting cable to the computer providing image information or in the preferred embodiment shown in FIG. 2 through aninfrared control receiver 38 which is responsive to infrared transmissions from a transmitting device similar to infrared television and video cassette recorder transmitters. In the preferred embodiment shown in FIG. 2 no external connections at all will be necessary to power or control the device rendering it extremely easy to use. In FIG. 2polarizer 12 could include an infrared mirror which allows visual light to pass but serves to reflect the infrared (heat-producing) portion of the light 11 from the light source.
In a preferred embodiment, the liquid crystal display panel in FIG. 2 would utilize aheat reflecting film 47 adjacent or separated frompolarizer 12 to reduce the amount of heat passing through theliquid crystal material 14. A preferred embodiment utilizes aheat reflecting film 47 marketed under the trademark Altair-M by Southwall Technologies in Palo Alto, Calif. The Altair-M coating is sputter-deposited and results in a film that has visible light transmissivity and also electrical conductivity. Electrical conductivity is advantageous in that it helps prevent broadcast of electromagnetic interference beyond the confines of the display device. The film additionally has superior environmental stability over many other coating processes although additional sheets of glass can be used to protect the film and/or polarizer from scratching.
Alternate embodiments of the transparent portion of the display unit are shown in exploded views of FIGS. 3a and 3b. In addition to the other previously discussed components, FIG. 3a illustrates afurther plate 40 which, withpolarizer 12, is separated fromtransparent plate 24 by spacingmaterial 42. In a preferred embodiment, the spacing material could be permeable to air and water vapor but impermeable to contaminants such as dust, thereby reducing any degradation over a time. In the FIG. 3a embodiment a single insulating orair space 44 serves to further insulate the temperature sensitive twisted nematicliquid crystal material 14 from heat transmitted from thelight source 10.
In extreme temperature and humidity environments, it may be desirable to utilize the variation shown in FIG. 3b which includes twoplates 40 and two sets ofimpermeable spacers 43 forming twoair spaces 44 for providing greater insulation. Thespacers 43 are shown withinlets 46 andoutlets 48. Theinlets 46 are connected to acoolant supply 49 which may be any transparent fluid. The fluid, in a preferred embodiment air, flows through the spaces on one or both sides of theliquid crystal material 14 cooling it during operation. The before mentionedheat reflecting film 47 is also illustrated. Of course the embodiments of FIG. 3a and 3b could also utilize the previously discussed infrared mirrors asback plates 40 in order to reflect any infrared light away from theliquid crystal material 14.
FIG. 4a illustrates the use of thedisplay unit 8 in combination with a conventionaloverhead projector 50.Projector 50 includes alower portion 52 housing the light source and initial reflecting and focusing mirrors and lenses, and an upper mirror/lens assembly 54.Display unit 8 is placed over the normal projection surface and includes anaperture 56 which corresponds to the visible light transparent portion of the display unit. Solar cells 36, not shown because they are on the lower portion of thedisplay unit 8, could provide sufficient electrical power to run the control unit and the energization and de-energization of the various transparent electrodes in the unit. Information concerning which electrodes are to be energized and de-energized can be supplied by means ofinfrared receiver 38. Thus it can be seen thatdisplay unit 8 is quite portable and can be used with any existing overhead projector system and the use of the solar cell and infrared data link eliminate any problem with cords.
In FIG. 4b a further preferred embodiment is illustrated in which thedisplay unit portion 8 is built in to theoverhead projector 60. Because this unit is not as portable it may not be quite as convenient although the fact that the display unit is part of thelower portion 52 eliminates the need for solar cell installation on the unit in order to power the control unit and a simple internal conductor connection will suffice. Similarly, there is no need to utilizeinfrared receiver 38 as a direct computer connection to thedisplay unit 8 throughlower portion 52 can easily be accomplished. However, it may be desirable to retain theinfrared receiver 38 so that the projected image can be ultimately controlled from a remote location.
The present invention can also be utilized in conjunction with or built into a low stress work station for computer/word processing operators or any other individuals who would normally work in front of a monitor or a cathode ray tube (CRT) screen. Normal viewing distances from an operator to a keyboard is about 24 inches and from the operator to the CRT is about 28 to 30 inches. It has been found that if a display can be provided at a further distance from the operator but with larger characters (so that the viewing angle subtended by the character is equal to or greater than that of the CRT) much less visual stress is created.
Contrast ratio is concerned with differences in the brightness between the viewed information and the immediate background and between the immediate background and the larger surround. A difference between light information on a dark CRT display and black information on a white printed page is that the informational elements in the display are luminous and are seen by direct rather than reflected light. Contrast ratios for the CRT display for comfortable viewing can be rather low with values of 2 or even less. Because the informational content of a typical CRT display is less than about 5% of the display area, the sparseness of luminosity causes the eye to adapt to the generally dark background. However, many times the luminance of the presented information is increased in an attempt to overcome the effects of reflections, glare, etc. and it is this increased luminosity which leads to increased viewing stress. An operator at a display seldom spends more than 25% of their time viewing the display and the remainder of their time is spent looking around at the keyboard, reference materials, at distractions or simply for a rest. Because all of these areas differ in luminance, the eye must continually change aperture to adapt to the differences in luminance. Stress because of this continuous adaptation can be minimized if the contrast ratios between these various areas are all kept to relatively low values. CRT displays are generally relatively small and thus occupy only a small portion of the visual field. A larger display occupying a greater portion of the visual field together with proper lighting control in the surrounding areas leads to lowered stress levels.
Reflection and glare are also problems, are important sources of stress and in many instances are outside of the control of the operator. Because a conventional CRT display has a convex surface, it provides reflections over a wide field of view. The inability to reposition a CRT display so as to eliminate all substantial reflections can cause additional visual stress. Focus and flicker are additional problems causing visual stress. A cathode ray tube display is electronically focused and over a period of time the focus may drift causing the display to go slightly out of focus. Additionally because of the CRT line scan, frame rates on the order of 50 to 60 Hertz are generated. Some flicker perception is obtained even at these high frame rates leading to additional visual stress.
In order to overcome a number of problems relating to visual stress in the workplace, applicant's invention can be utilized in conjunction with or incorporated into a low stress work station, examples of which are shown in FIGS. 5a and 5b. Both arrangements in FIGS. 5a and 5b would provide for an image width of around 36 inches allowing for viewing at a distance of at least 36 inches. FIG. 5a utilizes an enclosure with the conventionallight source 10 providing illumination through aFresnel lens 70 to thedisplay unit 8 whereupon the light passes throughprojection lens 72, is reflected byfront surface mirror 74 ontorear projection screen 76.
The embodiment in FIG. 5b does not require any refractive optical elements such asFresnel lens 70 orprojection lens 72 and instead utilizes an extremely small pointlight source 78 and the direct transmission of the light throughdisplay unit 8 reflecting off offront surface mirror 74 onto therear projection screen 76. This embodiment has a significantly shorter optical path than that of FIG. 5a and operates similarly to the well known shadowgraph technique. Obviously because of their different locations in the view screens, the display unit in FIG. 5a would provide the reverse image on therear projection screen 76 as opposed to the image provided by the display unit in FIG. 5b. This reversal as between the two different work stations can be accommodated mechanically by turning over the display unit 8 (assuming that the temperature and insulating qualities and components of the display unit are not critical to its operation or that it has the same insulating capabilities on both sides of the liquid crystal display) or by merely correcting for this in the electronic control unit or the operating software.
The advantages of the low stress work station displays are that the higher brightness level of the display background (much closer to the normal surround luminosity) and the lower contrast ratio between the image and the display background tends to reduce the stress due to screen and image brightness. The greater viewing distance especially at a distance where the eye tends to operate with a greater depth of focus tends to reduce stress due to changes in focus required with head movement. Larger image sizes and the larger visual angle subtended tends to improve readability and allow for a less precise focus. Also, with a keyboard and a normal CRT they are roughly the same distance from the eye, causing the eye to maintain the same focus all the time. Because the work station display is substantially farther from the eye than the keyboard, the eyes focus must change in shifting back and forth, thus providing a "restful exercise." The large screen size relative to the field of view tends to reduce stress due to differences in brightness between the display screen and the visual surround. The liquid crystal display unit being digital in nature (energized area or pixel only at cross points between transparent conductors) tends to reduce stress due to display focus or lack thereof. Low contrast ratio of the display unit tends to reduce stress due to flicker. The flatrear projection screen 76 tends to reduce stress from reflections and reduce reflected glare. Often times the flat screen can be repositioned to avoid undesirable reflections altogether.
Various preferred embodiments for packaging adisplay unit 8 have been examined and found suitable. Although FIG. 2 illustrates an exploded view of the device with only one edge housing the control unit being shown, in practice each unit would have an inner transparent image generating area surrounded by an outer frame or other structure. FIG. 2 illustrates the use ofcontrol wires 32 and 34 to connect the energizingelectrodes 26 and 28 to thecontrol unit 30, but one preferred embodiment applicant's invention utilizes anelastomeric connector 80 and a portion of such a connector is shown in FIG. 6a.
Theelastomeric connector 80 includes a pair of insulatingstrips 81 sandwiching conductive elements 82 andnon-conductive elements 83 in an alternating fashion. The application of such an elastomeric connector is illustrated in FIG. 6b which includes anLCD panel 86 which is the transparent portion of the display unit shown in FIG. 2 or the units shown in FIGS. 3a and 3b. Adisplay driver board 88 is comprised of printed circuit boards and/or elements making up theelectronic control unit 30, solar cell 36 and/orinfrared receiver 38. The elastomeric connectors serve to provide conduction paths between the driver board and the transparent electrodes located in the LCD panel. Appropriate connector pads would be located on the LCD panel and similar pads would be provided on thedriver board 88. Edge clamps 90 (represented by arrows in FIG. 6b) would serve to firmly compress the elastomeric connector between the pads on theLCD panel 86 and on thedriver board 88. Although it cannot be seen in this view, thedriver board 88 would obviously have a substantial aperture in the board so that light could pass therethrough and consequently through the LCD panel for image display purposes.
A further alternative connection method is that offlex circuit 92 shown in FIG. 7a. The flex circuit utilizes aflexible insulative substrate 94 upon whichelectrical conductors 96 have been painted or otherwise deposited. The use of such a flex circuit is shown in FIG. 7b in which the conductive portions of the flex circuit are connected to the appropriate portions ofdriver board 88 on the one hand and the appropriate transparent electrodes in the LCD panel on the other hand. In this manner the display unit can be folded easily and inexpensively during manufacture. The final position of both driver boards is shown in phantom lines in FIG. 7b and the initial manufacturing position of the righthand driver board is also shown in phantom lines. Electrical connections between the electronic elements and the LCD electrodes are made by lead-bonding, raised deposition connections such as "Flip Chip" or a combination of both. "Adhesive connection" refers to electrical connections made between the electronics and the LCD by using a flexible interconnect cable (such as Kaptan and copper) and a uni-axial conductive adhesive such as Scotchbrand 9703 Electrically Conductive Adhesive Transfer Tape or other functionally similar product.
A further embodiment of the present invention is a portable and compactdesktop information projector 100 shown in FIG. 8. Instead of supplying information to essentially one operator as in the low stress work station, it is envisioned that there is a need for a projection system capable of being viewed by 3 to 5 people simultaneously for the projection of electronic data information. It is desirable that such a system be completely self-contained although it is envisioned that substantially lower projection lamp intensities will be required due to the much smaller projection area as compared to that of the conventional overhead projector.
In FIG. 8, the lowpower light source 102 provides an initial beam of light towardfirst mirror 104 which may advantageously be a "cold mirror", i.e., one which reflects visible light but passes infrared light. Ifmirror 104 is a "cold mirror" much of the heat fromlight source 102 would be passed to the righthand portion of the enclosure and could then be radiated to the room. The beam of light reflected bymirror 104 passes throughFresnel lens 105 and theLCD display 106 which may be similar to those described with reference to FIGS. 2, 3a or 3b. Light is then reflected fromsecond mirror 108 andthird mirror 110 throughlens system 112 to afourth mirror 114 and from there onto the projection surface 116. Electronic data information may be entered into the projector by means of a computer and/orkeyboard 118 which is connected (not shown) to controlunit 30 which is also connected (not shown) to theLCD display 106. The focus oflens system 112 can be controlled byadjuster 120.
In order to obtain suitable image clarity at the projection surface 116 it is desirable to have thelargest LCD display 106 available. However, in order to avoid the necessity for extremely complex, and thus expensive, lens systems, it is necessary to have the longest optical path possible. In FIG. 8 the optical path is folded four times allowing for the components to be arranged in a relatively compact fashion and still provide a high resolution projection with a relatively inexpensive lens system. If a "cold mirror" is used for thefirst mirror 104 it may be unnecessary to provide any further heat insulation or temperature protection for theLCD display 106 in view of the relatively lowpower light source 102.
Thedesktop information projector 100 is quite portable and yet will provide a high contrast image suitable for viewing by a plurality of operators and may be extremely useful for teaching and demonstrating computers, computer-generated graphic systems, etc.
In accordance with the above, it will be seen that applicant's liquid crystal display unit can be utilized with any conventional overhead projector to provide computer generated images in a projection format. It will be seen that the basic display unit will have a relatively low cost and due to solid state technology will be extremely reliable. The device is capable of providing image animation and the image content is alterable in real time by means of the computer control connection. The device is also extremely portable and is compatible with all overhead projection systems. In combination with an appropriate work station housing the display unit can provide an extremely low stress work place when replacing the more conventional CRT.
The desktop information projector and the low stress work station can also be used in many situations in which the presence of a rear or front projector, respectively, would be undesirable. Examples would be point of sale or store window displays, restaurant and cafeteria displays, transportation terminal displays of arrival and departure times, outdoor displays in which only the screen need be outdoors and the more expensive contents are protected from the weather, vandalism, etc., large letter paging systems that can change or retain information without dependence upon clear or repeated voice communication.
In view of the above disclosure, many modifications and applications of the present invention will be obvious to those of ordinary skill in the art. Therefore, the present invention is limited only by the claims appended hereto.

Claims (4)

What is claimed is:
1. An apparatus for use in conjunction with a means for projecting a beam of light along an optical path onto a surface, said apparatus, responsive to a means for generating display image signals, for generating liquid crystal display images on said surface when inserted into said optical path, said means for projecting including a light source, said apparatus comprising:
control means, responsive to said generating means, for generating crystal means energizing signals;
twisted nematic crystal means for controlling polarization of light passing therethrough in response to energization and de-energization of said crystal means; and
means, responsive to said control means signals, for energizing said crystal means, said control means further includes wireless means, responsive to said display image signals from said generating means, for generating said crystal means energizing signals.
2. The apparatus according to claim 1, further including:
back polarizing means, disposed in said beam and located between said crystal means and said light source, for polarizing light passing therethrough; and
front analyzing means, located between said crystal means and said surface, for allowing light of a selected polarization to pass therethrough and for blocking light not having said selected polarization.
3. The apparatus according to claim 1, further including visible light transparent insulation means disposed in said beam and located between said light source and said crystal means.
4. The apparatus according to claim 1, wherein said wireless means comprises an infrared frequency receiver.
US08/137,7861987-04-301993-10-19Liquid crystal display for projection systemsExpired - Fee RelatedUS5404185A (en)

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US07/044,332US4763993A (en)1987-04-301987-04-30Liquid crystal display for projection systems
US07/194,516US4976536A (en)1987-04-301988-05-16Liquid crystal display for projection systems
US07/625,037US5187510A (en)1987-04-301990-12-10Liquid crystal display for projection systems
US07/920,190US5255029A (en)1987-04-301992-07-22Liquid crystal display for projection systems
US08/137,786US5404185A (en)1987-04-301993-10-19Liquid crystal display for projection systems

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Cited By (18)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5519524A (en)*1994-07-051996-05-21Fergason; James L.Active matrix liquid crystal having a counterelectrode substrate extended and connected to an external circuit
US5631756A (en)*1994-02-181997-05-20Canon Kabushiki KaishaDisplay apparatus with corner holding plates
US5696529A (en)*1995-06-271997-12-09Silicon Graphics, Inc.Flat panel monitor combining direct view with overhead projection capability
US5797838A (en)*1996-09-131998-08-25Colin CorporationPhysical-information-image displaying apparatus
US5896119A (en)*1995-06-271999-04-20Silicon Graphics, Inc.Removable backlighting assembly for flat panel display subsystem
US5975703A (en)*1996-09-301999-11-02Digital Optics InternationalImage projection system
WO2002044810A1 (en)*2000-11-302002-06-06Silverbrook Research Pty LtdData projector with internal printer
US20020122161A1 (en)*2001-03-012002-09-05Seiko Epson CorporationCorrection of image distortion
US6508085B1 (en)2000-08-232003-01-21American Trim, LlcHorizontal axis washer or dryer door with viewing system
US6527397B2 (en)*2000-08-082003-03-04Nec Viewtechnology, Ltd.Projector
US20030081158A1 (en)*2001-10-312003-05-01Zili LiDisplay and solar cell device
US6611249B1 (en)1998-07-222003-08-26Silicon Graphics, Inc.System and method for providing a wide aspect ratio flat panel display monitor independent white-balance adjustment and gamma correction capabilities
US20040155861A1 (en)*2002-05-302004-08-12Jackson Iii Robert P.Portable display monitor
US6816145B1 (en)1998-07-222004-11-09Silicon Graphics, Inc.Large area wide aspect ratio flat panel monitor having high resolution for high information content display
USRE39470E1 (en)*1996-04-262007-01-16T-Rex Property AbDigital information system
US20090046034A1 (en)*1996-04-262009-02-19T-Rex Property AbDigital Information System
US20100315833A1 (en)*2008-01-302010-12-16Digital Optics International LlcThin illumination system
US8721149B2 (en)2008-01-302014-05-13Qualcomm Mems Technologies, Inc.Illumination device having a tapered light guide

Families Citing this family (42)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5528720A (en)1992-03-231996-06-18Minnesota Mining And Manufacturing Co.Tapered multilayer luminaire devices
US6002829A (en)1992-03-231999-12-14Minnesota Mining And Manufacturing CompanyLuminaire device
US5946431A (en)*1993-07-301999-08-31Molecular DynamicsMulti-functional photometer with movable linkage for routing light-transmitting paths using reflective surfaces
US5392081A (en)*1993-09-291995-02-21Texas Instruments IncorporatedCalculator projection display
US6025897A (en)*1993-12-212000-02-153M Innovative Properties Co.Display with reflective polarizer and randomizing cavity
WO1995017303A1 (en)1993-12-211995-06-29Minnesota Mining And Manufacturing CompanyMultilayered optical film
US6804058B1 (en)1993-12-212004-10-123M Innovative Properties CompanyElectroluminescent light source and display incorporating same
US6096375A (en)*1993-12-212000-08-013M Innovative Properties CompanyOptical polarizer
US5828488A (en)*1993-12-211998-10-27Minnesota Mining And Manufacturing Co.Reflective polarizer display
USD359030S (en)1993-12-301995-06-06Intellimedia CorporationDigital presentation system for displaying computer generated images
EP0855043B1 (en)*1995-06-262003-02-05Minnesota Mining And Manufacturing CompanyDiffusely reflecting multilayer polarizers and mirrors
JPH11508702A (en)1995-06-261999-07-27ミネソタ マイニング アンド マニュファクチャリング カンパニー Backlight system with multilayer optical film reflector
US6088067A (en)*1995-06-262000-07-113M Innovative Properties CompanyLiquid crystal display projection system using multilayer optical film polarizers
JP3935936B2 (en)1995-06-262007-06-27スリーエム カンパニー Transflective display with reflective polarizing transflective reflector
CN1100472C (en)*1995-08-112003-01-29美国3M公司Electroluminescent lamp using multilayer optical film
US5722752A (en)*1997-01-101998-03-03In Focus Systems, Inc.Multimedia projection system with image quality correction
US6124979A (en)*1997-09-102000-09-26Hitachi, Ltd.Projection display apparatus and projection lens device for use therein
US6535333B1 (en)*2000-11-212003-03-183M Innovative Properties CompanyOptical system with reduced color shift
US7349151B2 (en)*2005-07-122008-03-25Hewlett-Packard Development Company, L.P.IR absorbing reflector
US12185512B2 (en)2007-11-162024-12-31Manufacturing Resources International, Inc.Electronic display assembly with thermal management
US8654302B2 (en)2008-03-032014-02-18Manufacturing Resources International, Inc.Heat exchanger for an electronic display
EP2141541A1 (en)*2008-07-022010-01-06Martin Professional A/SSystem for cooling a display
US10827656B2 (en)2008-12-182020-11-03Manufacturing Resources International, Inc.System for cooling an electronic image assembly with circulating gas and ambient gas
JP6305564B2 (en)2014-04-302018-04-04マニュファクチャリング・リソーシズ・インターナショナル・インコーポレーテッド Back-to-back electronic display assembly
GB201508520D0 (en)*2015-05-182015-07-01Structo Pte LtdLiquid crystal display assembly
US10747033B2 (en)2016-01-292020-08-18Lawrence Livermore National Security, LlcCooler for optics transmitting high intensity light
US10485113B2 (en)2017-04-272019-11-19Manufacturing Resources International, Inc.Field serviceable and replaceable display
US10602626B2 (en)2018-07-302020-03-24Manufacturing Resources International, Inc.Housing assembly for an integrated display unit
US11096317B2 (en)2019-02-262021-08-17Manufacturing Resources International, Inc.Display assembly with loopback cooling
US10795413B1 (en)2019-04-032020-10-06Manufacturing Resources International, Inc.Electronic display assembly with a channel for ambient air in an access panel
US11477923B2 (en)2020-10-022022-10-18Manufacturing Resources International, Inc.Field customizable airflow system for a communications box
US11470749B2 (en)2020-10-232022-10-11Manufacturing Resources International, Inc.Forced air cooling for display assemblies using centrifugal fans
US11778757B2 (en)2020-10-232023-10-03Manufacturing Resources International, Inc.Display assemblies incorporating electric vehicle charging equipment
US12408312B2 (en)2021-07-282025-09-02Manufacturing Resources International, Inc.Display assemblies with vents
US11966263B2 (en)2021-07-282024-04-23Manufacturing Resources International, Inc.Display assemblies for providing compressive forces at electronic display layers
US11744054B2 (en)2021-08-232023-08-29Manufacturing Resources International, Inc.Fan unit for providing improved airflow within display assemblies
US11919393B2 (en)2021-08-232024-03-05Manufacturing Resources International, Inc.Display assemblies inducing relatively turbulent flow and integrating electric vehicle charging equipment
US11762231B2 (en)2021-08-232023-09-19Manufacturing Resources International, Inc.Display assemblies inducing turbulent flow
US11968813B2 (en)2021-11-232024-04-23Manufacturing Resources International, Inc.Display assembly with divided interior space
US12072561B2 (en)2022-07-222024-08-27Manufacturing Resources International, Inc.Self-contained electronic display assembly, mounting structure and methods for the same
US12010813B2 (en)2022-07-222024-06-11Manufacturing Resources International, Inc.Self-contained electronic display assembly, mounting structure and methods for the same
US12035486B1 (en)2022-07-252024-07-09Manufacturing Resources International, Inc.Electronic display assembly with fabric panel communications box

Citations (122)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US1342894A (en)*1920-06-08A voluntary associa
US1385162A (en)*1917-03-271921-07-19American Optical CorpMotion-picture-projection apparatus
US1434268A (en)*1922-10-31A voluntary asso
US1462348A (en)*1922-05-051923-07-17Gen ElectricMethod and apparatus for producing cool light
US1518403A (en)*1922-06-091924-12-09Eastman Kodak CoProjecting system
US1592393A (en)*1921-08-131926-07-13Sulzberger NathanProjecting apparatus, etc.
FR610040A (en)1925-10-061926-08-28 Projection process of visible images in a lighted room
US1620338A (en)*1925-08-041927-03-08Eastman Kodak CoProjection system
GB281066A (en)1926-10-281927-12-01Charles Stuart McnairImprovements in or relating to light-transmitting heat screens for use in cinematograph projectors, and in windows and the like
US1666047A (en)*1928-04-10Projection system
DE483742C (en)1928-06-191929-10-05Zeiss Ikon Ag Lamp house with fire protection device for projector
US2108054A (en)*1933-12-051938-02-15News Projection CorpStock quotation projecting machine
US2187803A (en)*1937-03-041940-01-23Int Projector CorpMotion picture apparatus
US2258014A (en)*1938-04-201941-10-07OptikotechnaIlluminating device for enlarging or projecting apparatus
US2283268A (en)*1939-02-031942-05-19Kreinin Jacob MarcovichApparatus for projecting images of transparent or opaque objects and script on a screen
US2395561A (en)*1942-10-051946-02-26American Optical CorpProjection apparatus
US2464887A (en)*1946-01-121949-03-22American Optical CorpHeat absorbing screen for projectors
US2552184A (en)*1950-06-021951-05-08Eastman Kodak CoIlluminator for optical projectors
US2552185A (en)*1950-06-021951-05-08Eastman Kodak CoIlluminator for optical projectors
US2569918A (en)*1946-01-221951-10-02Berggren Per JohanMicrofilm projector
US2660925A (en)*1949-12-011953-12-01Bausch & LombLight reflector which transmits infrared rays
US2668478A (en)*1949-12-141954-02-09Fish Schurman CorpHeat protection filter
US2688271A (en)*1950-03-311954-09-07Gretener EdgarIllumination system for the projection of pictures
US2700323A (en)*1948-12-271955-01-25Fish Schurman CorpInfrared transmitting mirror
DE916358C (en)1950-02-091955-07-04Dr Friedrich Fehse Mirrors for optical devices made using heat-absorbing glass
US2742819A (en)*1952-05-231956-04-24Eastman Kodak CoLong wavelength transmitting optical interference filters
US2813802A (en)*1955-02-241957-11-19Monsanto ChemicalsInfra-red filter media
US2852980A (en)*1948-12-271958-09-23Schroder HubertInfra-red transmitting mirror
US2883291A (en)*1957-03-071959-04-21Servo Corp Of AmericaGlass composition
DE1132744B (en)1957-03-231962-07-05Katsuji Omoto Device for aligning the eye in eye examination devices
US3113033A (en)*1960-05-161963-12-03Corning Glass WorksLight filter
US3174067A (en)*1960-07-211965-03-16Patent Treuhand Ges Fuer Elektrische Gluehlampen MbhConstruction for projection lamps eliminating undesired infrared radiation
US3217596A (en)*1962-03-151965-11-16Allen E MurrayInfrared refracting lens system
US3250175A (en)*1960-08-041966-05-10Braun AgOptical projector with transverse flow blower and compartmentalized housing
US3253504A (en)*1962-05-241966-05-31Patent Treuhand Ges Fuer Elektrische Gluehlampen MbhProjection lamp
US3255342A (en)*1962-05-041966-06-07Quarzlampen GmbhLighting arrangement
US3293982A (en)*1964-09-281966-12-27Minnesota Mining & MfgOverhead projector with an unsymmetrical reflective supporting stage
US3325666A (en)*1964-07-241967-06-13Polaroid CorpInert lamp reflector
US3482911A (en)*1967-03-201969-12-09William A NobleImage projection apparatus
US3499112A (en)*1967-03-311970-03-03Rca CorpElectro-optical device
US3499702A (en)*1967-12-051970-03-10Rca CorpNematic liquid crystal mixtures for use in a light valve
US3514198A (en)*1968-03-131970-05-26Rca CorpApparatus for previewing slides
US3536391A (en)*1968-03-041970-10-27Minnesota Mining & MfgFlare control shield for an overhead projector
US3574444A (en)*1968-07-091971-04-13Minnesota Mining & MfgFrame useful as lens support
US3575452A (en)*1969-04-141971-04-20Minnesota Mining & MfgPanel latch
US3575499A (en)*1968-09-131971-04-20Honeywell IncPreviewing apparatus
US3586851A (en)*1969-02-241971-06-22Robert R RudolphCool light
US3761172A (en)*1972-03-291973-09-25Eastman Kodak CoColor analyzing photographic printer
US3807850A (en)*1972-01-071974-04-30J OzekiHorizontally rotatable reflector for overhead slide projector
US3824003A (en)*1973-05-071974-07-16Hughes Aircraft CoLiquid crystal display panel
US3836243A (en)*1972-06-271974-09-17Bell Telephone Labor IncLiquid crystal display apparatus
US3844650A (en)*1972-05-221974-10-29Minnesota Mining & MfgProjector
US3862360A (en)*1973-04-181975-01-21Hughes Aircraft CoLiquid crystal display system with integrated signal storage circuitry
DE2339079A1 (en)1973-08-021975-02-13Wesegang Fa EdHeat control system for epidiascope - uses combination of heat reflector and absorber between lamp and stage
US3895866A (en)*1971-12-031975-07-22Bbc Brown Boveri & CieInformation-bearing devices and projection display systems therefor
US3944320A (en)*1973-08-091976-03-16Thorn Electrical Industries LimitedCold-light mirror
US3979160A (en)*1975-03-031976-09-07Minnesota Mining And Manufacturing CompanyCompact overhead projector
US3980403A (en)*1975-02-251976-09-14Xerox CorporationVariable grating mode imaging method
DE2519616A1 (en)1975-05-021976-11-11Agfa Gevaert AgProjector slide temp. distribution measurement - has special unit with metal foil in contact with liquid crystal film in projection plane
US4060316A (en)*1975-02-251977-11-29Xerox CorporationImaging method
US4080052A (en)*1977-01-131978-03-21Gte Sylvania IncorporatedOverhead projection system with lens assembly having concentrically-oriented condensing lenses
US4088400A (en)*1972-12-291978-05-09Thomson-CsfDisplay devices
US4095881A (en)*1975-10-061978-06-20International Business Machines CorporationEfficient illumination system
US4154007A (en)*1977-09-211979-05-15Judd Wallace PDemonstration calculator for classroom use and the like
US4165160A (en)*1977-11-161979-08-21Bell & Howell CompanyLamp assembly and power module for fanless microfiche reader
US4171874A (en)*1975-02-031979-10-23General Electric CompanyEvenly illuminated display devices
US4185895A (en)*1978-03-311980-01-29Hughes Aircraft CompanyReflective mode, dynamic scattering liquid crystal display system having a Fresnel reflector for lighting
US4194833A (en)*1977-02-031980-03-25Static Systems CorporationElectronic typewriter having an electronic display
US4195915A (en)*1978-05-051980-04-01Hughes Aircraft CompanyLiquid crystal image projector system
US4222641A (en)*1978-06-291980-09-16Michael StolovImage or picture projecting system using electronically controlled slides
US4239349A (en)*1973-06-091980-12-16Scheffer Terry JArrangement for a polychrome display
US4275395A (en)*1977-10-311981-06-23International Business Machines CorporationInteractive projection display system
US4315258A (en)*1980-02-151982-02-09The United States Of America As Represented By The Secretary Of The NavyTransmissive and reflective liquid crystal display
US4338006A (en)*1979-01-171982-07-06Slidex CorporationOverhead projector
US4349817A (en)*1980-01-281982-09-14Hoffman William CLiquid crystal display system using fiber optic faceplates
US4365869A (en)*1979-02-131982-12-28Thomson-CsfLarge-screen visualization device
US4368963A (en)*1978-06-291983-01-18Michael StolovMulticolor image or picture projecting system using electronically controlled slides
US4372639A (en)*1981-06-031983-02-08Hughes Aircraft CompanyDirectional diffusing screen
US4386826A (en)*1979-09-101983-06-07Michael StolovAlphanumeric display with electronically controlled colors
US4386836A (en)*1979-12-281983-06-07Kabushiki Kaisha Suwa SeikoshaElectro-photographic printer
US4403216A (en)*1980-12-111983-09-06Nintendo Co., Ltd.Display
US4409583A (en)*1981-02-231983-10-11Dahan Pierre LouisVideo system for assisting automobile traffic employing a segmented LCD display
US4420234A (en)*1982-03-121983-12-13Edward DolejsiCombination text and picture display system
US4423927A (en)*1981-09-221984-01-03The United States Of America As Represented By The Secretary Of The ArmyOptical, temporal bandpass filter
US4453810A (en)*1981-09-161984-06-12Foto ResourcesFilm transparency projector
EP0127701A1 (en)1983-06-071984-12-12Datelcare B.V.Apparatus for projecting a light image
US4507547A (en)*1982-06-011985-03-26Kabushiki Kaisha Toyota Chuo KenkyushoHeat wave shielding lamination
US4514042A (en)*1981-09-301985-04-30Sharp Kabushiki KaishaThin structure of display panel
US4526441A (en)*1981-06-301985-07-02International Business Machines CorporationMethod and electrolytic display for selectively displaying an image
US4536014A (en)*1981-01-081985-08-20Securicard Systems LimitedIndentification of articles using liquid crystal identity cards
US4564276A (en)*1983-03-251986-01-14Agfa-Gevaert AktiengesellschaftMicrofilm sensing device with a projection lamp and cold-light mirror
US4577959A (en)*1984-02-101986-03-25Orc Manufacturing Co., Ltd.Exposure apparatus
US4613207A (en)*1984-05-081986-09-23Manchester R & D PartnershipLiquid crystal projector and method
FR2559923B1 (en)1984-02-221986-12-26Commissariat Energie Atomique SYSTEM FOR THE COMMON PROJECTION OF TRANSPARENT DOCUMENTS OR SLIDES ON A WALL SCREEN
US4652101A (en)*1984-04-131987-03-24Grunwald Peter HOverhead projector
US4660936A (en)*1986-01-021987-04-28Rca CorporationArrangement to minimize reflected ambient light in a display
US4664482A (en)*1985-03-151987-05-12Hitachi, Ltd.Liquid crystal display device having a chiral additive and angularly displaced polarizers
US4671634A (en)*1985-03-191987-06-09Casio Computer Co., Ltd.Liquid crystal projector
US4687301A (en)*1985-07-121987-08-18Hughes Aircraft CompanyFull-color projector system with a tricolor-separating prism
FR2596880A1 (en)1986-04-021987-10-09Prestinox SaApparatus for direct projection and/or back projection of information and/or images which are stationary or animated
US4704004A (en)*1986-01-021987-11-03Rca CorporationLight box having a Fresnel lens
US4722593A (en)*1985-07-291988-02-02Casio Computer Co., Ltd.Liquid-crystal projector with light beam reduction lens array for improved brightness of image outer portions
US4726662A (en)*1985-09-241988-02-23Talig CorporationDisplay including a prismatic lens system or a prismatic reflective system
US4756604A (en)*1986-07-041988-07-12Hitachi, Ltd.Liquid crystal device using a Fresnel collimating lens for improving uniformity of display contrast ratio
US4763993A (en)*1987-04-301988-08-16N-View CorporationLiquid crystal display for projection systems
US4765718A (en)*1987-11-031988-08-23General Electric CompanyCollimated light source for liquid crystal display utilizing internally reflecting light pipe collimator with offset angle correction
US4765734A (en)*1986-05-221988-08-23Pakon, Inc.Digitally encoded alpha-numeric projector slide and systems for using the same
US4770525A (en)*1986-03-241988-09-13Casio Computer Co., Ltd.Liquid crystal projector
US4779510A (en)*1987-11-201988-10-25Den Abbeel Paul VanElectronic apparatus for displaying music
US4787737A (en)1986-03-261988-11-29Casio Computer Co., Ltd.Projection display apparatus
US4812034A (en)1985-02-281989-03-14Fujitsu LimitedProjection type liquid crystal display device
US4824210A (en)1985-02-211989-04-25Casio Computer Co., Ltd.Liquid crystal projector
US4846694A (en)1988-06-201989-07-11Image Storage/Retrieval Systems, Inc.Computer controlled, overhead projector display
US4864390A (en)1986-08-221989-09-05North American Philips CorporationDisplay system with equal path lengths
US4880303A (en)1987-02-161989-11-14Grunwald Peter HeinOverhead projector
US4881110A (en)1985-07-251989-11-14Hughes Aircraft CompanyDouble-Schottky diode liquid crystal light valve
US4882599A (en)1987-03-311989-11-21Grunwald Peter HeinOverhead projector
US4941732A (en)1986-08-061990-07-17Casio Computer Co., Ltd.Transmission type projection screen
US4944578A (en)1988-07-211990-07-31Telex CommunicationsColor graphic imager utilizing a liquid crystal display
US4953971A (en)1988-10-171990-09-04Highfill Robert RInteractive image projection apparatus
US4976536A (en)1987-04-301990-12-11Nview CorporationLiquid crystal display for projection systems
US5048949A (en)1987-11-261991-09-17Casio Computer Co., Ltd.Liquid crystal projector

Patent Citations (127)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US1434268A (en)*1922-10-31A voluntary asso
US1342894A (en)*1920-06-08A voluntary associa
US1666047A (en)*1928-04-10Projection system
US1385162A (en)*1917-03-271921-07-19American Optical CorpMotion-picture-projection apparatus
US1592393A (en)*1921-08-131926-07-13Sulzberger NathanProjecting apparatus, etc.
US1462348A (en)*1922-05-051923-07-17Gen ElectricMethod and apparatus for producing cool light
US1518403A (en)*1922-06-091924-12-09Eastman Kodak CoProjecting system
US1620338A (en)*1925-08-041927-03-08Eastman Kodak CoProjection system
FR610040A (en)1925-10-061926-08-28 Projection process of visible images in a lighted room
GB281066A (en)1926-10-281927-12-01Charles Stuart McnairImprovements in or relating to light-transmitting heat screens for use in cinematograph projectors, and in windows and the like
DE483742C (en)1928-06-191929-10-05Zeiss Ikon Ag Lamp house with fire protection device for projector
US2108054A (en)*1933-12-051938-02-15News Projection CorpStock quotation projecting machine
US2187803A (en)*1937-03-041940-01-23Int Projector CorpMotion picture apparatus
US2258014A (en)*1938-04-201941-10-07OptikotechnaIlluminating device for enlarging or projecting apparatus
US2283268A (en)*1939-02-031942-05-19Kreinin Jacob MarcovichApparatus for projecting images of transparent or opaque objects and script on a screen
US2395561A (en)*1942-10-051946-02-26American Optical CorpProjection apparatus
US2464887A (en)*1946-01-121949-03-22American Optical CorpHeat absorbing screen for projectors
US2569918A (en)*1946-01-221951-10-02Berggren Per JohanMicrofilm projector
US2700323A (en)*1948-12-271955-01-25Fish Schurman CorpInfrared transmitting mirror
US2852980A (en)*1948-12-271958-09-23Schroder HubertInfra-red transmitting mirror
US2660925A (en)*1949-12-011953-12-01Bausch & LombLight reflector which transmits infrared rays
US2668478A (en)*1949-12-141954-02-09Fish Schurman CorpHeat protection filter
DE916358C (en)1950-02-091955-07-04Dr Friedrich Fehse Mirrors for optical devices made using heat-absorbing glass
US2688271A (en)*1950-03-311954-09-07Gretener EdgarIllumination system for the projection of pictures
US2552185A (en)*1950-06-021951-05-08Eastman Kodak CoIlluminator for optical projectors
US2552184A (en)*1950-06-021951-05-08Eastman Kodak CoIlluminator for optical projectors
US2742819A (en)*1952-05-231956-04-24Eastman Kodak CoLong wavelength transmitting optical interference filters
US2813802A (en)*1955-02-241957-11-19Monsanto ChemicalsInfra-red filter media
US2883291A (en)*1957-03-071959-04-21Servo Corp Of AmericaGlass composition
DE1132744B (en)1957-03-231962-07-05Katsuji Omoto Device for aligning the eye in eye examination devices
US3113033A (en)*1960-05-161963-12-03Corning Glass WorksLight filter
US3174067A (en)*1960-07-211965-03-16Patent Treuhand Ges Fuer Elektrische Gluehlampen MbhConstruction for projection lamps eliminating undesired infrared radiation
US3250175A (en)*1960-08-041966-05-10Braun AgOptical projector with transverse flow blower and compartmentalized housing
US3217596A (en)*1962-03-151965-11-16Allen E MurrayInfrared refracting lens system
US3255342A (en)*1962-05-041966-06-07Quarzlampen GmbhLighting arrangement
US3253504A (en)*1962-05-241966-05-31Patent Treuhand Ges Fuer Elektrische Gluehlampen MbhProjection lamp
US3325666A (en)*1964-07-241967-06-13Polaroid CorpInert lamp reflector
US3293982A (en)*1964-09-281966-12-27Minnesota Mining & MfgOverhead projector with an unsymmetrical reflective supporting stage
US3482911A (en)*1967-03-201969-12-09William A NobleImage projection apparatus
US3499112A (en)*1967-03-311970-03-03Rca CorpElectro-optical device
US3499702A (en)*1967-12-051970-03-10Rca CorpNematic liquid crystal mixtures for use in a light valve
US3536391A (en)*1968-03-041970-10-27Minnesota Mining & MfgFlare control shield for an overhead projector
US3514198A (en)*1968-03-131970-05-26Rca CorpApparatus for previewing slides
US3574444A (en)*1968-07-091971-04-13Minnesota Mining & MfgFrame useful as lens support
US3575499A (en)*1968-09-131971-04-20Honeywell IncPreviewing apparatus
US3586851A (en)*1969-02-241971-06-22Robert R RudolphCool light
US3575452A (en)*1969-04-141971-04-20Minnesota Mining & MfgPanel latch
US3895866A (en)*1971-12-031975-07-22Bbc Brown Boveri & CieInformation-bearing devices and projection display systems therefor
US3807850A (en)*1972-01-071974-04-30J OzekiHorizontally rotatable reflector for overhead slide projector
US3761172A (en)*1972-03-291973-09-25Eastman Kodak CoColor analyzing photographic printer
US3844650A (en)*1972-05-221974-10-29Minnesota Mining & MfgProjector
US3836243A (en)*1972-06-271974-09-17Bell Telephone Labor IncLiquid crystal display apparatus
US4088400A (en)*1972-12-291978-05-09Thomson-CsfDisplay devices
US3862360A (en)*1973-04-181975-01-21Hughes Aircraft CoLiquid crystal display system with integrated signal storage circuitry
US3824003A (en)*1973-05-071974-07-16Hughes Aircraft CoLiquid crystal display panel
US4239349A (en)*1973-06-091980-12-16Scheffer Terry JArrangement for a polychrome display
DE2339079A1 (en)1973-08-021975-02-13Wesegang Fa EdHeat control system for epidiascope - uses combination of heat reflector and absorber between lamp and stage
US3944320A (en)*1973-08-091976-03-16Thorn Electrical Industries LimitedCold-light mirror
US4171874A (en)*1975-02-031979-10-23General Electric CompanyEvenly illuminated display devices
US4060316A (en)*1975-02-251977-11-29Xerox CorporationImaging method
US3980403A (en)*1975-02-251976-09-14Xerox CorporationVariable grating mode imaging method
US3979160A (en)*1975-03-031976-09-07Minnesota Mining And Manufacturing CompanyCompact overhead projector
DE2519616A1 (en)1975-05-021976-11-11Agfa Gevaert AgProjector slide temp. distribution measurement - has special unit with metal foil in contact with liquid crystal film in projection plane
US4095881A (en)*1975-10-061978-06-20International Business Machines CorporationEfficient illumination system
US4080052A (en)*1977-01-131978-03-21Gte Sylvania IncorporatedOverhead projection system with lens assembly having concentrically-oriented condensing lenses
US4194833A (en)*1977-02-031980-03-25Static Systems CorporationElectronic typewriter having an electronic display
US4154007A (en)*1977-09-211979-05-15Judd Wallace PDemonstration calculator for classroom use and the like
US4154007B1 (en)*1977-09-211991-12-31P Judd Wallace
US4275395A (en)*1977-10-311981-06-23International Business Machines CorporationInteractive projection display system
US4165160A (en)*1977-11-161979-08-21Bell & Howell CompanyLamp assembly and power module for fanless microfiche reader
US4185895A (en)*1978-03-311980-01-29Hughes Aircraft CompanyReflective mode, dynamic scattering liquid crystal display system having a Fresnel reflector for lighting
US4195915A (en)*1978-05-051980-04-01Hughes Aircraft CompanyLiquid crystal image projector system
US4368963A (en)*1978-06-291983-01-18Michael StolovMulticolor image or picture projecting system using electronically controlled slides
US4222641A (en)*1978-06-291980-09-16Michael StolovImage or picture projecting system using electronically controlled slides
US4294524A (en)*1978-06-291981-10-13Michael StolovImage or picture projecting system using electronically controlled slides
US4338006A (en)*1979-01-171982-07-06Slidex CorporationOverhead projector
US4365869A (en)*1979-02-131982-12-28Thomson-CsfLarge-screen visualization device
US4386826A (en)*1979-09-101983-06-07Michael StolovAlphanumeric display with electronically controlled colors
US4386836A (en)*1979-12-281983-06-07Kabushiki Kaisha Suwa SeikoshaElectro-photographic printer
US4349817A (en)*1980-01-281982-09-14Hoffman William CLiquid crystal display system using fiber optic faceplates
US4315258A (en)*1980-02-151982-02-09The United States Of America As Represented By The Secretary Of The NavyTransmissive and reflective liquid crystal display
US4403216A (en)*1980-12-111983-09-06Nintendo Co., Ltd.Display
US4536014A (en)*1981-01-081985-08-20Securicard Systems LimitedIndentification of articles using liquid crystal identity cards
US4409583A (en)*1981-02-231983-10-11Dahan Pierre LouisVideo system for assisting automobile traffic employing a segmented LCD display
US4372639A (en)*1981-06-031983-02-08Hughes Aircraft CompanyDirectional diffusing screen
US4526441A (en)*1981-06-301985-07-02International Business Machines CorporationMethod and electrolytic display for selectively displaying an image
US4453810A (en)*1981-09-161984-06-12Foto ResourcesFilm transparency projector
US4423927A (en)*1981-09-221984-01-03The United States Of America As Represented By The Secretary Of The ArmyOptical, temporal bandpass filter
US4514042A (en)*1981-09-301985-04-30Sharp Kabushiki KaishaThin structure of display panel
US4420234A (en)*1982-03-121983-12-13Edward DolejsiCombination text and picture display system
US4507547A (en)*1982-06-011985-03-26Kabushiki Kaisha Toyota Chuo KenkyushoHeat wave shielding lamination
US4564276A (en)*1983-03-251986-01-14Agfa-Gevaert AktiengesellschaftMicrofilm sensing device with a projection lamp and cold-light mirror
EP0127701A1 (en)1983-06-071984-12-12Datelcare B.V.Apparatus for projecting a light image
US4577959A (en)*1984-02-101986-03-25Orc Manufacturing Co., Ltd.Exposure apparatus
FR2559923B1 (en)1984-02-221986-12-26Commissariat Energie Atomique SYSTEM FOR THE COMMON PROJECTION OF TRANSPARENT DOCUMENTS OR SLIDES ON A WALL SCREEN
US4652101A (en)*1984-04-131987-03-24Grunwald Peter HOverhead projector
US4613207A (en)*1984-05-081986-09-23Manchester R & D PartnershipLiquid crystal projector and method
US4824210A (en)1985-02-211989-04-25Casio Computer Co., Ltd.Liquid crystal projector
US4812034A (en)1985-02-281989-03-14Fujitsu LimitedProjection type liquid crystal display device
US4664482A (en)*1985-03-151987-05-12Hitachi, Ltd.Liquid crystal display device having a chiral additive and angularly displaced polarizers
EP0197265B1 (en)1985-03-191991-01-30Casio Computer Company LimitedLiquid crystal projector
US4671634A (en)*1985-03-191987-06-09Casio Computer Co., Ltd.Liquid crystal projector
US4687301A (en)*1985-07-121987-08-18Hughes Aircraft CompanyFull-color projector system with a tricolor-separating prism
US4881110A (en)1985-07-251989-11-14Hughes Aircraft CompanyDouble-Schottky diode liquid crystal light valve
US4722593A (en)*1985-07-291988-02-02Casio Computer Co., Ltd.Liquid-crystal projector with light beam reduction lens array for improved brightness of image outer portions
US4726662A (en)*1985-09-241988-02-23Talig CorporationDisplay including a prismatic lens system or a prismatic reflective system
US4660936B1 (en)*1986-01-021990-01-23Rca Corp
US4660936A (en)*1986-01-021987-04-28Rca CorporationArrangement to minimize reflected ambient light in a display
US4704004A (en)*1986-01-021987-11-03Rca CorporationLight box having a Fresnel lens
US4770525A (en)*1986-03-241988-09-13Casio Computer Co., Ltd.Liquid crystal projector
US4787737A (en)1986-03-261988-11-29Casio Computer Co., Ltd.Projection display apparatus
FR2596880A1 (en)1986-04-021987-10-09Prestinox SaApparatus for direct projection and/or back projection of information and/or images which are stationary or animated
US4765734A (en)*1986-05-221988-08-23Pakon, Inc.Digitally encoded alpha-numeric projector slide and systems for using the same
US4756604A (en)*1986-07-041988-07-12Hitachi, Ltd.Liquid crystal device using a Fresnel collimating lens for improving uniformity of display contrast ratio
US4941732A (en)1986-08-061990-07-17Casio Computer Co., Ltd.Transmission type projection screen
US4864390B1 (en)1986-08-221990-12-11Philips Corp
US4864390A (en)1986-08-221989-09-05North American Philips CorporationDisplay system with equal path lengths
US4880303A (en)1987-02-161989-11-14Grunwald Peter HeinOverhead projector
US4882599A (en)1987-03-311989-11-21Grunwald Peter HeinOverhead projector
US4763993A (en)*1987-04-301988-08-16N-View CorporationLiquid crystal display for projection systems
US4976536A (en)1987-04-301990-12-11Nview CorporationLiquid crystal display for projection systems
US4765718A (en)*1987-11-031988-08-23General Electric CompanyCollimated light source for liquid crystal display utilizing internally reflecting light pipe collimator with offset angle correction
US4779510A (en)*1987-11-201988-10-25Den Abbeel Paul VanElectronic apparatus for displaying music
US5048949A (en)1987-11-261991-09-17Casio Computer Co., Ltd.Liquid crystal projector
US4846694A (en)1988-06-201989-07-11Image Storage/Retrieval Systems, Inc.Computer controlled, overhead projector display
US4944578A (en)1988-07-211990-07-31Telex CommunicationsColor graphic imager utilizing a liquid crystal display
US4953971A (en)1988-10-171990-09-04Highfill Robert RInteractive image projection apparatus

Non-Patent Citations (12)

* Cited by examiner, † Cited by third party
Title
Apparatus for Teaching Physics, W. C. Connolly, Depart. of Physics, Appalachian State University, Boone, N. C., Sep. 1985, pp. 382 383.*
Apparatus for Teaching Physics, W. C. Connolly, Depart. of Physics, Appalachian State University, Boone, N. C., Sep. 1985, pp. 382-383.
Article in PC Week , Feb. 11, 1986, VIP Device alleged to have been shown in Mar. 1986 & alleged to have been offered for sale before Apr. 1986 and alleged to have been used in public on Apr., 1986.*
Article in PC Week, Feb. 11, 1986, VIP Device alleged to have been shown in Mar. 1986 & alleged to have been offered for sale before Apr. 1986 and alleged to have been used in public on Apr., 1986.
IEEE Trans On Elec. Devices, vol. ED 17, No. 5, 5/70, Design of an Electrooptic Light Valve Projection Display, T. H. Moore.*
IEEE Trans On Elec. Devices, vol. ED-17, No. 5, 5/70, Design of an Electrooptic Light Valve Projection Display, T. H. Moore.
PC Presenter Series, "Built-In and Add-On LCD's for Creating Large Screen Graphic Presentations with your Personal Computer", Apollo Disclosure.
PC Presenter Series, Built In and Add On LCD s for Creating Large Screen Graphic Presentations with your Personal Computer , Apollo Disclosure.*
SPIE vol. 250, 1980, "Liquid Crystal Light Projector, etc." R. S. Gold, pp. 59-68, Optomechanical Systems Design (1980).
SPIE vol. 250, 1980, Liquid Crystal Light Projector, etc. R. S. Gold, pp. 59 68, Optomechanical Systems Design (1980).*
The Journal of the Institute of Television Engineers of Japan 1984, vol. 38.*
VIP Device photographs alleged to have been made by Chisholm, 910 Campise Way, Suite 2C, Campbell, Calif. 95008.*

Cited By (40)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US5631756A (en)*1994-02-181997-05-20Canon Kabushiki KaishaDisplay apparatus with corner holding plates
US5519524A (en)*1994-07-051996-05-21Fergason; James L.Active matrix liquid crystal having a counterelectrode substrate extended and connected to an external circuit
US6144360A (en)*1995-06-272000-11-07Silicon Graphics, Inc.Flat panel display system having direct monitoring and overhead projection monitoring capability
US5696529A (en)*1995-06-271997-12-09Silicon Graphics, Inc.Flat panel monitor combining direct view with overhead projection capability
US5831697A (en)*1995-06-271998-11-03Silicon Graphics, Inc.Flat panel display screen apparatus with optical junction and removable backlighting assembly
US5896119A (en)*1995-06-271999-04-20Silicon Graphics, Inc.Removable backlighting assembly for flat panel display subsystem
US5986737A (en)*1995-06-271999-11-16Silicon Graphics, Inc.Multi-layer flat panel display screen apparatus
US20090046034A1 (en)*1996-04-262009-02-19T-Rex Property AbDigital Information System
USRE39470E1 (en)*1996-04-262007-01-16T-Rex Property AbDigital information system
US5797838A (en)*1996-09-131998-08-25Colin CorporationPhysical-information-image displaying apparatus
US6375327B2 (en)1996-09-302002-04-23Digital Optics InternatImage projection system
US6520643B1 (en)1996-09-302003-02-18Digital Optics InternationalImage projection system
US5975703A (en)*1996-09-301999-11-02Digital Optics InternationalImage projection system
US7136076B2 (en)1998-05-292006-11-14Silicon Graphics, Inc.System and method for providing a wide aspect ratio flat panel display monitor independent white-balance adjustment and gamma correction capabilities
US20040036708A1 (en)*1998-05-292004-02-26Evanicky Daniel E.System and method for providing a wide aspect ratio flat panel display monitor independent white-balance adjustment and gamma correction capabilities
US7782345B2 (en)1998-05-292010-08-24Graphics Properties Holdings, Inc.System and method for providing a wide aspect ratio flat panel display monitor independent white-balance adjustment and gamma correct capabilities
US6816145B1 (en)1998-07-222004-11-09Silicon Graphics, Inc.Large area wide aspect ratio flat panel monitor having high resolution for high information content display
US6611249B1 (en)1998-07-222003-08-26Silicon Graphics, Inc.System and method for providing a wide aspect ratio flat panel display monitor independent white-balance adjustment and gamma correction capabilities
US6527397B2 (en)*2000-08-082003-03-04Nec Viewtechnology, Ltd.Projector
US6508085B1 (en)2000-08-232003-01-21American Trim, LlcHorizontal axis washer or dryer door with viewing system
US20040032573A1 (en)*2000-11-302004-02-19Kia SilverbrookData projector with internal printer
US6799853B2 (en)2000-11-302004-10-05Silverbrook Research Pty LtdData projector with internal printer
US20050083495A1 (en)*2000-11-302005-04-21Kia SilverbrookVideo display device with onboard hardcopy capability
US20050099610A1 (en)*2000-11-302005-05-12Kia SilverbrookData projector with printhead
US20050140725A1 (en)*2000-11-302005-06-30Kia SilverbrookVideo display device with onboard hardcopy capability
US6966659B2 (en)2000-11-302005-11-22Silverbrook Research Pty LtdData projector with printhead
WO2002044810A1 (en)*2000-11-302002-06-06Silverbrook Research Pty LtdData projector with internal printer
US6652104B2 (en)*2001-03-012003-11-25Seiko Epson CorporationCorrection of image distortion
US20020122161A1 (en)*2001-03-012002-09-05Seiko Epson CorporationCorrection of image distortion
US7206044B2 (en)*2001-10-312007-04-17Motorola, Inc.Display and solar cell device
US20050150540A1 (en)*2001-10-312005-07-14Zili LiDisplay and solar cell device
US20030081158A1 (en)*2001-10-312003-05-01Zili LiDisplay and solar cell device
US20040155861A1 (en)*2002-05-302004-08-12Jackson Iii Robert P.Portable display monitor
US20100315833A1 (en)*2008-01-302010-12-16Digital Optics International LlcThin illumination system
US8348489B2 (en)2008-01-302013-01-08Qualcomm Mems Technologies, Inc.Thin illumination system
US8721149B2 (en)2008-01-302014-05-13Qualcomm Mems Technologies, Inc.Illumination device having a tapered light guide
US8740439B2 (en)2008-01-302014-06-03Qualcomm Mems Technologies, Inc.Thin illumination system
US9244212B2 (en)2008-01-302016-01-26Qualcomm Mems Technologies, Inc.Illumination device having a tapered light guide
US9395479B2 (en)2008-01-302016-07-19Qualcomm Mems Technologies, Inc.Illumination device having a tapered light guide
US9448353B2 (en)2008-01-302016-09-20Qualcomm Mems Technologies, Inc.Illumination device having a tapered light guide

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